reflect.odin 34 KB

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  1. package reflect
  2. import "core:runtime"
  3. import "core:intrinsics"
  4. import "core:mem"
  5. _ :: mem
  6. _ :: intrinsics
  7. Type_Info :: runtime.Type_Info
  8. Type_Info_Named :: runtime.Type_Info_Named
  9. Type_Info_Integer :: runtime.Type_Info_Integer
  10. Type_Info_Rune :: runtime.Type_Info_Rune
  11. Type_Info_Float :: runtime.Type_Info_Float
  12. Type_Info_Complex :: runtime.Type_Info_Complex
  13. Type_Info_Quaternion :: runtime.Type_Info_Quaternion
  14. Type_Info_String :: runtime.Type_Info_String
  15. Type_Info_Boolean :: runtime.Type_Info_Boolean
  16. Type_Info_Any :: runtime.Type_Info_Any
  17. Type_Info_Type_Id :: runtime.Type_Info_Type_Id
  18. Type_Info_Pointer :: runtime.Type_Info_Pointer
  19. Type_Info_Multi_Pointer :: runtime.Type_Info_Multi_Pointer
  20. Type_Info_Procedure :: runtime.Type_Info_Procedure
  21. Type_Info_Array :: runtime.Type_Info_Array
  22. Type_Info_Enumerated_Array :: runtime.Type_Info_Enumerated_Array
  23. Type_Info_Dynamic_Array :: runtime.Type_Info_Dynamic_Array
  24. Type_Info_Slice :: runtime.Type_Info_Slice
  25. Type_Info_Tuple :: runtime.Type_Info_Tuple
  26. Type_Info_Struct :: runtime.Type_Info_Struct
  27. Type_Info_Union :: runtime.Type_Info_Union
  28. Type_Info_Enum :: runtime.Type_Info_Enum
  29. Type_Info_Map :: runtime.Type_Info_Map
  30. Type_Info_Bit_Set :: runtime.Type_Info_Bit_Set
  31. Type_Info_Simd_Vector :: runtime.Type_Info_Simd_Vector
  32. Type_Info_Relative_Pointer :: runtime.Type_Info_Relative_Pointer
  33. Type_Info_Relative_Slice :: runtime.Type_Info_Relative_Slice
  34. Type_Info_Matrix :: runtime.Type_Info_Matrix
  35. Type_Info_Soa_Pointer :: runtime.Type_Info_Soa_Pointer
  36. Type_Info_Enum_Value :: runtime.Type_Info_Enum_Value
  37. Type_Kind :: enum {
  38. Invalid,
  39. Named,
  40. Integer,
  41. Rune,
  42. Float,
  43. Complex,
  44. Quaternion,
  45. String,
  46. Boolean,
  47. Any,
  48. Type_Id,
  49. Pointer,
  50. Multi_Pointer,
  51. Procedure,
  52. Array,
  53. Enumerated_Array,
  54. Dynamic_Array,
  55. Slice,
  56. Tuple,
  57. Struct,
  58. Union,
  59. Enum,
  60. Map,
  61. Bit_Set,
  62. Simd_Vector,
  63. Relative_Pointer,
  64. Relative_Slice,
  65. Matrix,
  66. Soa_Pointer,
  67. }
  68. type_kind :: proc(T: typeid) -> Type_Kind {
  69. ti := type_info_of(T)
  70. if ti != nil {
  71. switch _ in ti.variant {
  72. case Type_Info_Named: return .Named
  73. case Type_Info_Integer: return .Integer
  74. case Type_Info_Rune: return .Rune
  75. case Type_Info_Float: return .Float
  76. case Type_Info_Complex: return .Complex
  77. case Type_Info_Quaternion: return .Quaternion
  78. case Type_Info_String: return .String
  79. case Type_Info_Boolean: return .Boolean
  80. case Type_Info_Any: return .Any
  81. case Type_Info_Type_Id: return .Type_Id
  82. case Type_Info_Pointer: return .Pointer
  83. case Type_Info_Multi_Pointer: return .Multi_Pointer
  84. case Type_Info_Procedure: return .Procedure
  85. case Type_Info_Array: return .Array
  86. case Type_Info_Enumerated_Array: return .Enumerated_Array
  87. case Type_Info_Dynamic_Array: return .Dynamic_Array
  88. case Type_Info_Slice: return .Slice
  89. case Type_Info_Tuple: return .Tuple
  90. case Type_Info_Struct: return .Struct
  91. case Type_Info_Union: return .Union
  92. case Type_Info_Enum: return .Enum
  93. case Type_Info_Map: return .Map
  94. case Type_Info_Bit_Set: return .Bit_Set
  95. case Type_Info_Simd_Vector: return .Simd_Vector
  96. case Type_Info_Relative_Pointer: return .Relative_Pointer
  97. case Type_Info_Relative_Slice: return .Relative_Slice
  98. case Type_Info_Matrix: return .Matrix
  99. case Type_Info_Soa_Pointer: return .Soa_Pointer
  100. }
  101. }
  102. return .Invalid
  103. }
  104. // TODO(bill): Better name
  105. underlying_type_kind :: proc(T: typeid) -> Type_Kind {
  106. return type_kind(runtime.typeid_base(T))
  107. }
  108. // TODO(bill): Better name
  109. backing_type_kind :: proc(T: typeid) -> Type_Kind {
  110. return type_kind(runtime.typeid_core(T))
  111. }
  112. type_info_base :: runtime.type_info_base
  113. type_info_core :: runtime.type_info_core
  114. type_info_base_without_enum :: type_info_core
  115. when !ODIN_DISALLOW_RTTI {
  116. typeid_base :: runtime.typeid_base
  117. typeid_core :: runtime.typeid_core
  118. typeid_base_without_enum :: typeid_core
  119. }
  120. any_base :: proc(v: any) -> any {
  121. v := v
  122. if v != nil {
  123. v.id = typeid_base(v.id)
  124. }
  125. return v
  126. }
  127. any_core :: proc(v: any) -> any {
  128. v := v
  129. if v != nil {
  130. v.id = typeid_core(v.id)
  131. }
  132. return v
  133. }
  134. typeid_elem :: proc(id: typeid) -> typeid {
  135. ti := type_info_of(id)
  136. if ti == nil { return nil }
  137. bits := 8*ti.size
  138. #partial switch v in ti.variant {
  139. case Type_Info_Complex:
  140. switch bits {
  141. case 64: return f32
  142. case 128: return f64
  143. }
  144. case Type_Info_Quaternion:
  145. switch bits {
  146. case 128: return f32
  147. case 256: return f64
  148. }
  149. case Type_Info_Pointer: return v.elem.id
  150. case Type_Info_Multi_Pointer: return v.elem.id
  151. case Type_Info_Soa_Pointer: return v.elem.id
  152. case Type_Info_Array: return v.elem.id
  153. case Type_Info_Enumerated_Array: return v.elem.id
  154. case Type_Info_Slice: return v.elem.id
  155. case Type_Info_Dynamic_Array: return v.elem.id
  156. }
  157. return id
  158. }
  159. size_of_typeid :: proc(T: typeid) -> int {
  160. if ti := type_info_of(T); ti != nil {
  161. return ti.size
  162. }
  163. return 0
  164. }
  165. align_of_typeid :: proc(T: typeid) -> int {
  166. if ti := type_info_of(T); ti != nil {
  167. return ti.align
  168. }
  169. return 1
  170. }
  171. as_bytes :: proc(v: any) -> []byte {
  172. if v != nil {
  173. sz := size_of_typeid(v.id)
  174. return ([^]byte)(v.data)[:sz]
  175. }
  176. return nil
  177. }
  178. any_data :: #force_inline proc(v: any) -> (data: rawptr, id: typeid) {
  179. return v.data, v.id
  180. }
  181. is_nil :: proc(v: any) -> bool {
  182. if v == nil {
  183. return true
  184. }
  185. data := as_bytes(v)
  186. if data == nil {
  187. return true
  188. }
  189. for v in data {
  190. if v != 0 {
  191. return false
  192. }
  193. }
  194. return true
  195. }
  196. length :: proc(val: any) -> int {
  197. if val == nil { return 0 }
  198. #partial switch a in type_info_of(val.id).variant {
  199. case Type_Info_Named:
  200. return length({val.data, a.base.id})
  201. case Type_Info_Pointer:
  202. return length({val.data, a.elem.id})
  203. case Type_Info_Array:
  204. return a.count
  205. case Type_Info_Enumerated_Array:
  206. return a.count
  207. case Type_Info_Slice:
  208. return (^runtime.Raw_Slice)(val.data).len
  209. case Type_Info_Dynamic_Array:
  210. return (^runtime.Raw_Dynamic_Array)(val.data).len
  211. case Type_Info_Map:
  212. return runtime.map_len((^runtime.Raw_Map)(val.data)^)
  213. case Type_Info_String:
  214. if a.is_cstring {
  215. return len((^cstring)(val.data)^)
  216. } else {
  217. return (^runtime.Raw_String)(val.data).len
  218. }
  219. }
  220. return 0
  221. }
  222. capacity :: proc(val: any) -> int {
  223. if val == nil { return 0 }
  224. #partial switch a in type_info_of(val.id).variant {
  225. case Type_Info_Named:
  226. return capacity({val.data, a.base.id})
  227. case Type_Info_Pointer:
  228. return capacity({val.data, a.elem.id})
  229. case Type_Info_Array:
  230. return a.count
  231. case Type_Info_Enumerated_Array:
  232. return a.count
  233. case Type_Info_Dynamic_Array:
  234. return (^runtime.Raw_Dynamic_Array)(val.data).cap
  235. case Type_Info_Map:
  236. return runtime.map_cap((^runtime.Raw_Map)(val.data)^)
  237. }
  238. return 0
  239. }
  240. index :: proc(val: any, i: int, loc := #caller_location) -> any {
  241. if val == nil { return nil }
  242. #partial switch a in type_info_of(val.id).variant {
  243. case Type_Info_Named:
  244. return index({val.data, a.base.id}, i, loc)
  245. case Type_Info_Pointer:
  246. ptr := (^rawptr)(val.data)^
  247. if ptr == nil {
  248. return nil
  249. }
  250. return index({ptr, a.elem.id}, i, loc)
  251. case Type_Info_Multi_Pointer:
  252. ptr := (^rawptr)(val.data)^
  253. if ptr == nil {
  254. return nil
  255. }
  256. return index({ptr, a.elem.id}, i, loc)
  257. case Type_Info_Array:
  258. runtime.bounds_check_error_loc(loc, i, a.count)
  259. offset := uintptr(a.elem.size * i)
  260. data := rawptr(uintptr(val.data) + offset)
  261. return any{data, a.elem.id}
  262. case Type_Info_Enumerated_Array:
  263. runtime.bounds_check_error_loc(loc, i, a.count)
  264. offset := uintptr(a.elem.size * i)
  265. data := rawptr(uintptr(val.data) + offset)
  266. return any{data, a.elem.id}
  267. case Type_Info_Slice:
  268. raw := (^runtime.Raw_Slice)(val.data)
  269. runtime.bounds_check_error_loc(loc, i, raw.len)
  270. offset := uintptr(a.elem.size * i)
  271. data := rawptr(uintptr(raw.data) + offset)
  272. return any{data, a.elem.id}
  273. case Type_Info_Dynamic_Array:
  274. raw := (^runtime.Raw_Dynamic_Array)(val.data)
  275. runtime.bounds_check_error_loc(loc, i, raw.len)
  276. offset := uintptr(a.elem.size * i)
  277. data := rawptr(uintptr(raw.data) + offset)
  278. return any{data, a.elem.id}
  279. case Type_Info_String:
  280. if a.is_cstring { return nil }
  281. raw := (^runtime.Raw_String)(val.data)
  282. runtime.bounds_check_error_loc(loc, i, raw.len)
  283. offset := uintptr(size_of(u8) * i)
  284. data := rawptr(uintptr(raw.data) + offset)
  285. return any{data, typeid_of(u8)}
  286. }
  287. return nil
  288. }
  289. deref :: proc(val: any) -> any {
  290. if val != nil {
  291. ti := type_info_base(type_info_of(val.id))
  292. if info, ok := ti.variant.(Type_Info_Pointer); ok {
  293. return any{
  294. (^rawptr)(val.data)^,
  295. info.elem.id,
  296. }
  297. }
  298. }
  299. return val
  300. }
  301. // Struct_Tag represents the type of the string of a struct field
  302. //
  303. // Through convention, tags are the concatenation of optionally space separationed key:"value" pairs.
  304. // Each key is a non-empty string which contains no control characters other than space, quotes, and colon.
  305. Struct_Tag :: distinct string
  306. Struct_Field :: struct {
  307. name: string,
  308. type: ^Type_Info,
  309. tag: Struct_Tag,
  310. offset: uintptr,
  311. is_using: bool,
  312. }
  313. struct_field_at :: proc(T: typeid, i: int) -> (field: Struct_Field) {
  314. ti := runtime.type_info_base(type_info_of(T))
  315. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  316. if 0 <= i && i < len(s.names) {
  317. field.name = s.names[i]
  318. field.type = s.types[i]
  319. field.tag = Struct_Tag(s.tags[i])
  320. field.offset = s.offsets[i]
  321. field.is_using = s.usings[i]
  322. }
  323. }
  324. return
  325. }
  326. struct_field_by_name :: proc(T: typeid, name: string) -> (field: Struct_Field) {
  327. ti := runtime.type_info_base(type_info_of(T))
  328. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  329. for fname, i in s.names {
  330. if fname == name {
  331. field.name = s.names[i]
  332. field.type = s.types[i]
  333. field.tag = Struct_Tag(s.tags[i])
  334. field.offset = s.offsets[i]
  335. field.is_using = s.usings[i]
  336. break
  337. }
  338. }
  339. }
  340. return
  341. }
  342. struct_field_value_by_name :: proc(a: any, field: string, allow_using := false) -> any {
  343. if a == nil { return nil }
  344. ti := runtime.type_info_base(type_info_of(a.id))
  345. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  346. for name, i in s.names {
  347. if name == field {
  348. return any{
  349. rawptr(uintptr(a.data) + s.offsets[i]),
  350. s.types[i].id,
  351. }
  352. }
  353. if allow_using && s.usings[i] {
  354. f := any{
  355. rawptr(uintptr(a.data) + s.offsets[i]),
  356. s.types[i].id,
  357. }
  358. if res := struct_field_value_by_name(f, field, allow_using); res != nil {
  359. return res
  360. }
  361. }
  362. }
  363. }
  364. return nil
  365. }
  366. struct_field_names :: proc(T: typeid) -> []string {
  367. ti := runtime.type_info_base(type_info_of(T))
  368. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  369. return s.names
  370. }
  371. return nil
  372. }
  373. struct_field_types :: proc(T: typeid) -> []^Type_Info {
  374. ti := runtime.type_info_base(type_info_of(T))
  375. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  376. return s.types
  377. }
  378. return nil
  379. }
  380. struct_field_tags :: proc(T: typeid) -> []Struct_Tag {
  381. ti := runtime.type_info_base(type_info_of(T))
  382. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  383. return transmute([]Struct_Tag)s.tags
  384. }
  385. return nil
  386. }
  387. struct_field_offsets :: proc(T: typeid) -> []uintptr {
  388. ti := runtime.type_info_base(type_info_of(T))
  389. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  390. return s.offsets
  391. }
  392. return nil
  393. }
  394. struct_fields_zipped :: proc(T: typeid) -> (fields: #soa[]Struct_Field) {
  395. ti := runtime.type_info_base(type_info_of(T))
  396. if s, ok := ti.variant.(runtime.Type_Info_Struct); ok {
  397. return soa_zip(
  398. name = s.names,
  399. type = s.types,
  400. tag = transmute([]Struct_Tag)s.tags,
  401. offset = s.offsets,
  402. is_using = s.usings,
  403. )
  404. }
  405. return nil
  406. }
  407. struct_tag_get :: proc(tag: Struct_Tag, key: string) -> (value: Struct_Tag) {
  408. value, _ = struct_tag_lookup(tag, key)
  409. return
  410. }
  411. struct_tag_lookup :: proc(tag: Struct_Tag, key: string) -> (value: Struct_Tag, ok: bool) {
  412. for t := tag; t != ""; /**/ {
  413. i := 0
  414. for i < len(t) && t[i] == ' ' { // Skip whitespace
  415. i += 1
  416. }
  417. t = t[i:]
  418. if len(t) == 0 {
  419. break
  420. }
  421. i = 0
  422. loop: for i < len(t) {
  423. switch t[i] {
  424. case ':', '"':
  425. break loop
  426. case 0x00 ..< ' ', 0x7f ..= 0x9f: // break if control character is found
  427. break loop
  428. }
  429. i += 1
  430. }
  431. if i == 0 {
  432. break
  433. }
  434. if i+1 >= len(t) {
  435. break
  436. }
  437. if t[i] != ':' || t[i+1] != '"' {
  438. break
  439. }
  440. name := string(t[:i])
  441. t = t[i+1:]
  442. i = 1
  443. for i < len(t) && t[i] != '"' { // find closing quote
  444. if t[i] == '\\' {
  445. i += 1 // Skip escaped characters
  446. }
  447. i += 1
  448. }
  449. if i >= len(t) {
  450. break
  451. }
  452. val := string(t[:i+1])
  453. t = t[i+1:]
  454. if key == name {
  455. return Struct_Tag(val[1:i]), true
  456. }
  457. }
  458. return
  459. }
  460. enum_string :: proc(a: any) -> string {
  461. if a == nil { return "" }
  462. ti := runtime.type_info_base(type_info_of(a.id))
  463. if e, ok := ti.variant.(runtime.Type_Info_Enum); ok {
  464. v, _ := as_i64(a)
  465. for value, i in e.values {
  466. if value == Type_Info_Enum_Value(v) {
  467. return e.names[i]
  468. }
  469. }
  470. } else {
  471. panic("expected an enum to reflect.enum_string")
  472. }
  473. return ""
  474. }
  475. // Given a enum type and a value name, get the enum value.
  476. enum_from_name :: proc($Enum_Type: typeid, name: string) -> (value: Enum_Type, ok: bool) {
  477. ti := type_info_base(type_info_of(Enum_Type))
  478. if eti, eti_ok := ti.variant.(runtime.Type_Info_Enum); eti_ok {
  479. for value_name, i in eti.names {
  480. if value_name != name {
  481. continue
  482. }
  483. v := eti.values[i]
  484. value = Enum_Type(v)
  485. ok = true
  486. return
  487. }
  488. }
  489. return
  490. }
  491. enum_from_name_any :: proc(Enum_Type: typeid, name: string) -> (value: Type_Info_Enum_Value, ok: bool) {
  492. ti := runtime.type_info_base(type_info_of(Enum_Type))
  493. if eti, eti_ok := ti.variant.(runtime.Type_Info_Enum); eti_ok {
  494. for value_name, i in eti.names {
  495. if value_name != name {
  496. continue
  497. }
  498. value = eti.values[i]
  499. ok = true
  500. return
  501. }
  502. }
  503. return
  504. }
  505. enum_field_names :: proc(Enum_Type: typeid) -> []string {
  506. ti := runtime.type_info_base(type_info_of(Enum_Type))
  507. if eti, eti_ok := ti.variant.(runtime.Type_Info_Enum); eti_ok {
  508. return eti.names
  509. }
  510. return nil
  511. }
  512. enum_field_values :: proc(Enum_Type: typeid) -> []Type_Info_Enum_Value {
  513. ti := runtime.type_info_base(type_info_of(Enum_Type))
  514. if eti, eti_ok := ti.variant.(runtime.Type_Info_Enum); eti_ok {
  515. return eti.values
  516. }
  517. return nil
  518. }
  519. Enum_Field :: struct {
  520. name: string,
  521. value: Type_Info_Enum_Value,
  522. }
  523. enum_fields_zipped :: proc(Enum_Type: typeid) -> (fields: #soa[]Enum_Field) {
  524. ti := runtime.type_info_base(type_info_of(Enum_Type))
  525. if eti, eti_ok := ti.variant.(runtime.Type_Info_Enum); eti_ok {
  526. return soa_zip(name=eti.names, value=eti.values)
  527. }
  528. return nil
  529. }
  530. union_variant_type_info :: proc(a: any) -> ^Type_Info {
  531. id := union_variant_typeid(a)
  532. return type_info_of(id)
  533. }
  534. type_info_union_is_pure_maybe :: proc(info: runtime.Type_Info_Union) -> bool {
  535. return len(info.variants) == 1 && is_pointer(info.variants[0])
  536. }
  537. union_variant_typeid :: proc(a: any) -> typeid {
  538. if a == nil { return nil }
  539. ti := runtime.type_info_base(type_info_of(a.id))
  540. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  541. if type_info_union_is_pure_maybe(info) {
  542. if a.data != nil {
  543. return info.variants[0].id
  544. }
  545. return nil
  546. }
  547. tag_ptr := uintptr(a.data) + info.tag_offset
  548. tag_any := any{rawptr(tag_ptr), info.tag_type.id}
  549. tag: i64 = ---
  550. switch i in tag_any {
  551. case u8: tag = i64(i)
  552. case i8: tag = i64(i)
  553. case u16: tag = i64(i)
  554. case i16: tag = i64(i)
  555. case u32: tag = i64(i)
  556. case i32: tag = i64(i)
  557. case u64: tag = i64(i)
  558. case i64: tag = i
  559. case: unimplemented()
  560. }
  561. if a.data != nil && tag != 0 {
  562. i := tag if info.no_nil else tag-1
  563. return info.variants[i].id
  564. }
  565. return nil
  566. }
  567. panic("expected a union to reflect.union_variant_typeid")
  568. }
  569. get_union_variant_raw_tag :: proc(a: any) -> i64 {
  570. if a == nil { return -1 }
  571. ti := runtime.type_info_base(type_info_of(a.id))
  572. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  573. if type_info_union_is_pure_maybe(info) {
  574. return 1 if a.data != nil else 0
  575. }
  576. tag_ptr := uintptr(a.data) + info.tag_offset
  577. tag_any := any{rawptr(tag_ptr), info.tag_type.id}
  578. tag: i64 = ---
  579. switch i in tag_any {
  580. case u8: tag = i64(i)
  581. case i8: tag = i64(i)
  582. case u16: tag = i64(i)
  583. case i16: tag = i64(i)
  584. case u32: tag = i64(i)
  585. case i32: tag = i64(i)
  586. case u64: tag = i64(i)
  587. case i64: tag = i
  588. case: unimplemented()
  589. }
  590. return tag
  591. }
  592. panic("expected a union to reflect.get_union_variant_raw_tag")
  593. }
  594. get_union_variant :: proc(a: any) -> any {
  595. if a == nil {
  596. return nil
  597. }
  598. id := union_variant_typeid(a)
  599. if id == nil {
  600. return nil
  601. }
  602. return any{a.data, id}
  603. }
  604. get_union_as_ptr_variants :: proc(val: ^$T) -> (res: intrinsics.type_convert_variants_to_pointers(T)) where intrinsics.type_is_union(T) {
  605. ptr := rawptr(val)
  606. tag := get_union_variant_raw_tag(val^)
  607. mem.copy(&res, &ptr, size_of(ptr))
  608. set_union_variant_raw_tag(res, tag)
  609. return
  610. }
  611. set_union_variant_raw_tag :: proc(a: any, tag: i64) {
  612. if a == nil { return }
  613. ti := runtime.type_info_base(type_info_of(a.id))
  614. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  615. if type_info_union_is_pure_maybe(info) {
  616. // Cannot do anything
  617. return
  618. }
  619. tag_ptr := uintptr(a.data) + info.tag_offset
  620. tag_any := any{rawptr(tag_ptr), info.tag_type.id}
  621. switch i in &tag_any {
  622. case u8: i = u8(tag)
  623. case i8: i = i8(tag)
  624. case u16: i = u16(tag)
  625. case i16: i = i16(tag)
  626. case u32: i = u32(tag)
  627. case i32: i = i32(tag)
  628. case u64: i = u64(tag)
  629. case i64: i = tag
  630. case: unimplemented()
  631. }
  632. return
  633. }
  634. panic("expected a union to reflect.set_union_variant_raw_tag")
  635. }
  636. set_union_variant_typeid :: proc(a: any, id: typeid) {
  637. if a == nil { return }
  638. ti := runtime.type_info_base(type_info_of(a.id))
  639. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  640. if type_info_union_is_pure_maybe(info) {
  641. // Cannot do anything
  642. return
  643. }
  644. if id == nil && !info.no_nil {
  645. set_union_variant_raw_tag(a, 0)
  646. return
  647. }
  648. for variant, i in info.variants {
  649. if variant.id == id {
  650. tag := i64(i)
  651. if !info.no_nil {
  652. tag += 1
  653. }
  654. set_union_variant_raw_tag(a, tag)
  655. return
  656. }
  657. }
  658. return
  659. }
  660. panic("expected a union to reflect.set_union_variant_typeid")
  661. }
  662. set_union_variant_type_info :: proc(a: any, tag_ti: ^Type_Info) {
  663. if a == nil { return }
  664. ti := runtime.type_info_base(type_info_of(a.id))
  665. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  666. if type_info_union_is_pure_maybe(info) {
  667. // Cannot do anything
  668. return
  669. }
  670. if tag_ti == nil && !info.no_nil {
  671. set_union_variant_raw_tag(a, 0)
  672. return
  673. }
  674. for variant, i in info.variants {
  675. if variant == tag_ti {
  676. tag := i64(i)
  677. if !info.no_nil {
  678. tag += 1
  679. }
  680. set_union_variant_raw_tag(a, tag)
  681. return
  682. }
  683. }
  684. return
  685. }
  686. panic("expected a union to reflect.set_union_variant_type_info")
  687. }
  688. set_union_value :: proc(dst: any, value: any) -> bool {
  689. if dst == nil { return false }
  690. ti := runtime.type_info_base(type_info_of(dst.id))
  691. if info, ok := ti.variant.(runtime.Type_Info_Union); ok {
  692. if value.id == nil {
  693. intrinsics.mem_zero(dst.data, ti.size)
  694. return true
  695. }
  696. if ti.id == runtime.typeid_base(value.id) {
  697. intrinsics.mem_copy(dst.data, value.data, ti.size)
  698. return true
  699. }
  700. if type_info_union_is_pure_maybe(info) {
  701. if variant := info.variants[0]; variant.id == value.id {
  702. intrinsics.mem_copy(dst.data, value.data, variant.size)
  703. return true
  704. }
  705. return false
  706. }
  707. for variant, i in info.variants {
  708. if variant.id == value.id {
  709. tag := i64(i)
  710. if !info.no_nil {
  711. tag += 1
  712. }
  713. intrinsics.mem_copy(dst.data, value.data, variant.size)
  714. set_union_variant_raw_tag(dst, tag)
  715. return true
  716. }
  717. }
  718. return false
  719. }
  720. panic("expected a union to reflect.set_union_variant_typeid")
  721. }
  722. as_bool :: proc(a: any) -> (value: bool, valid: bool) {
  723. if a == nil { return }
  724. a := a
  725. ti := runtime.type_info_core(type_info_of(a.id))
  726. a.id = ti.id
  727. #partial switch info in ti.variant {
  728. case Type_Info_Boolean:
  729. valid = true
  730. switch v in a {
  731. case bool: value = v
  732. case b8: value = bool(v)
  733. case b16: value = bool(v)
  734. case b32: value = bool(v)
  735. case b64: value = bool(v)
  736. case: valid = false
  737. }
  738. }
  739. return
  740. }
  741. as_int :: proc(a: any) -> (value: int, valid: bool) {
  742. v: i64
  743. v, valid = as_i64(a)
  744. value = int(v)
  745. return
  746. }
  747. as_uint :: proc(a: any) -> (value: uint, valid: bool) {
  748. v: u64
  749. v, valid = as_u64(a)
  750. value = uint(v)
  751. return
  752. }
  753. as_i64 :: proc(a: any) -> (value: i64, valid: bool) {
  754. if a == nil { return }
  755. a := a
  756. ti := runtime.type_info_core(type_info_of(a.id))
  757. a.id = ti.id
  758. #partial switch info in ti.variant {
  759. case Type_Info_Integer:
  760. valid = true
  761. switch v in a {
  762. case i8: value = i64(v)
  763. case i16: value = i64(v)
  764. case i32: value = i64(v)
  765. case i64: value = v
  766. case i128: value = i64(v)
  767. case int: value = i64(v)
  768. case u8: value = i64(v)
  769. case u16: value = i64(v)
  770. case u32: value = i64(v)
  771. case u64: value = i64(v)
  772. case u128: value = i64(v)
  773. case uint: value = i64(v)
  774. case uintptr: value = i64(v)
  775. case u16le: value = i64(v)
  776. case u32le: value = i64(v)
  777. case u64le: value = i64(v)
  778. case u128le: value = i64(v)
  779. case i16le: value = i64(v)
  780. case i32le: value = i64(v)
  781. case i64le: value = i64(v)
  782. case i128le: value = i64(v)
  783. case u16be: value = i64(v)
  784. case u32be: value = i64(v)
  785. case u64be: value = i64(v)
  786. case u128be: value = i64(v)
  787. case i16be: value = i64(v)
  788. case i32be: value = i64(v)
  789. case i64be: value = i64(v)
  790. case i128be: value = i64(v)
  791. case: valid = false
  792. }
  793. case Type_Info_Rune:
  794. r := a.(rune)
  795. value = i64(r)
  796. valid = true
  797. case Type_Info_Float:
  798. valid = true
  799. switch v in a {
  800. case f32: value = i64(v)
  801. case f64: value = i64(v)
  802. case f32le: value = i64(v)
  803. case f64le: value = i64(v)
  804. case f32be: value = i64(v)
  805. case f64be: value = i64(v)
  806. case: valid = false
  807. }
  808. case Type_Info_Boolean:
  809. valid = true
  810. switch v in a {
  811. case bool: value = i64(v)
  812. case b8: value = i64(v)
  813. case b16: value = i64(v)
  814. case b32: value = i64(v)
  815. case b64: value = i64(v)
  816. case: valid = false
  817. }
  818. case Type_Info_Complex:
  819. switch v in a {
  820. case complex64:
  821. if imag(v) == 0 {
  822. value = i64(real(v))
  823. valid = true
  824. }
  825. case complex128:
  826. if imag(v) == 0 {
  827. value = i64(real(v))
  828. valid = true
  829. }
  830. }
  831. case Type_Info_Quaternion:
  832. switch v in a {
  833. case quaternion128:
  834. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  835. value = i64(real(v))
  836. valid = true
  837. }
  838. case quaternion256:
  839. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  840. value = i64(real(v))
  841. valid = true
  842. }
  843. }
  844. }
  845. return
  846. }
  847. as_u64 :: proc(a: any) -> (value: u64, valid: bool) {
  848. if a == nil { return }
  849. a := a
  850. ti := runtime.type_info_core(type_info_of(a.id))
  851. a.id = ti.id
  852. #partial switch info in ti.variant {
  853. case Type_Info_Integer:
  854. valid = true
  855. switch v in a {
  856. case i8: value = u64(v)
  857. case i16: value = u64(v)
  858. case i32: value = u64(v)
  859. case i64: value = u64(v)
  860. case i128: value = u64(v)
  861. case int: value = u64(v)
  862. case u8: value = u64(v)
  863. case u16: value = u64(v)
  864. case u32: value = u64(v)
  865. case u64: value = (v)
  866. case u128: value = u64(v)
  867. case uint: value = u64(v)
  868. case uintptr:value = u64(v)
  869. case u16le: value = u64(v)
  870. case u32le: value = u64(v)
  871. case u64le: value = u64(v)
  872. case u128le: value = u64(v)
  873. case i16le: value = u64(v)
  874. case i32le: value = u64(v)
  875. case i64le: value = u64(v)
  876. case i128le: value = u64(v)
  877. case u16be: value = u64(v)
  878. case u32be: value = u64(v)
  879. case u64be: value = u64(v)
  880. case u128be: value = u64(v)
  881. case i16be: value = u64(v)
  882. case i32be: value = u64(v)
  883. case i64be: value = u64(v)
  884. case i128be: value = u64(v)
  885. case: valid = false
  886. }
  887. case Type_Info_Rune:
  888. r := a.(rune)
  889. value = u64(r)
  890. valid = true
  891. case Type_Info_Float:
  892. valid = true
  893. switch v in a {
  894. case f16: value = u64(v)
  895. case f32: value = u64(v)
  896. case f64: value = u64(v)
  897. case f32le: value = u64(v)
  898. case f64le: value = u64(v)
  899. case f32be: value = u64(v)
  900. case f64be: value = u64(v)
  901. case: valid = false
  902. }
  903. case Type_Info_Boolean:
  904. valid = true
  905. switch v in a {
  906. case bool: value = u64(v)
  907. case b8: value = u64(v)
  908. case b16: value = u64(v)
  909. case b32: value = u64(v)
  910. case b64: value = u64(v)
  911. case: valid = false
  912. }
  913. case Type_Info_Complex:
  914. switch v in a {
  915. case complex64:
  916. if imag(v) == 0 {
  917. value = u64(real(v))
  918. valid = true
  919. }
  920. case complex128:
  921. if imag(v) == 0 {
  922. value = u64(real(v))
  923. valid = true
  924. }
  925. }
  926. case Type_Info_Quaternion:
  927. switch v in a {
  928. case quaternion128:
  929. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  930. value = u64(real(v))
  931. valid = true
  932. }
  933. case quaternion256:
  934. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  935. value = u64(real(v))
  936. valid = true
  937. }
  938. }
  939. }
  940. return
  941. }
  942. as_f64 :: proc(a: any) -> (value: f64, valid: bool) {
  943. if a == nil { return }
  944. a := a
  945. ti := runtime.type_info_core(type_info_of(a.id))
  946. a.id = ti.id
  947. #partial switch info in ti.variant {
  948. case Type_Info_Integer:
  949. valid = true
  950. switch v in a {
  951. case i8: value = f64(v)
  952. case i16: value = f64(v)
  953. case i32: value = f64(v)
  954. case i64: value = f64(v)
  955. case i128: value = f64(v)
  956. case u8: value = f64(v)
  957. case u16: value = f64(v)
  958. case u32: value = f64(v)
  959. case u64: value = f64(v)
  960. case u128: value = f64(v)
  961. case u16le: value = f64(v)
  962. case u32le: value = f64(v)
  963. case u64le: value = f64(v)
  964. case u128le:value = f64(v)
  965. case i16le: value = f64(v)
  966. case i32le: value = f64(v)
  967. case i64le: value = f64(v)
  968. case i128le:value = f64(v)
  969. case u16be: value = f64(v)
  970. case u32be: value = f64(v)
  971. case u64be: value = f64(v)
  972. case u128be:value = f64(v)
  973. case i16be: value = f64(v)
  974. case i32be: value = f64(v)
  975. case i64be: value = f64(v)
  976. case i128be:value = f64(v)
  977. case: valid = false
  978. }
  979. case Type_Info_Rune:
  980. r := a.(rune)
  981. value = f64(i32(r))
  982. valid = true
  983. case Type_Info_Float:
  984. valid = true
  985. switch v in a {
  986. case f16: value = f64(v)
  987. case f32: value = f64(v)
  988. case f64: value = (v)
  989. case f32le: value = f64(v)
  990. case f64le: value = f64(v)
  991. case f32be: value = f64(v)
  992. case f64be: value = f64(v)
  993. case: valid = false
  994. }
  995. case Type_Info_Boolean:
  996. valid = true
  997. switch v in a {
  998. case bool: value = f64(i32(v))
  999. case b8: value = f64(i32(v))
  1000. case b16: value = f64(i32(v))
  1001. case b32: value = f64(i32(v))
  1002. case b64: value = f64(i32(v))
  1003. case: valid = false
  1004. }
  1005. case Type_Info_Complex:
  1006. switch v in a {
  1007. case complex64:
  1008. if imag(v) == 0 {
  1009. value = f64(real(v))
  1010. valid = true
  1011. }
  1012. case complex128:
  1013. if imag(v) == 0 {
  1014. value = real(v)
  1015. valid = true
  1016. }
  1017. }
  1018. case Type_Info_Quaternion:
  1019. switch v in a {
  1020. case quaternion128:
  1021. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  1022. value = f64(real(v))
  1023. valid = true
  1024. }
  1025. case quaternion256:
  1026. if imag(v) == 0 && jmag(v) == 0 && kmag(v) == 0 {
  1027. value = real(v)
  1028. valid = true
  1029. }
  1030. }
  1031. }
  1032. return
  1033. }
  1034. as_string :: proc(a: any) -> (value: string, valid: bool) {
  1035. if a == nil { return }
  1036. a := a
  1037. ti := runtime.type_info_core(type_info_of(a.id))
  1038. a.id = ti.id
  1039. #partial switch info in ti.variant {
  1040. case Type_Info_String:
  1041. valid = true
  1042. switch v in a {
  1043. case string: value = v
  1044. case cstring: value = string(v)
  1045. case: valid = false
  1046. }
  1047. }
  1048. return
  1049. }
  1050. relative_pointer_to_absolute :: proc(a: any) -> rawptr {
  1051. if a == nil { return nil }
  1052. a := a
  1053. ti := runtime.type_info_core(type_info_of(a.id))
  1054. a.id = ti.id
  1055. #partial switch info in ti.variant {
  1056. case Type_Info_Relative_Pointer:
  1057. return relative_pointer_to_absolute_raw(a.data, info.base_integer.id)
  1058. }
  1059. return nil
  1060. }
  1061. relative_pointer_to_absolute_raw :: proc(data: rawptr, base_integer_id: typeid) -> rawptr {
  1062. _handle :: proc(ptr: ^$T) -> rawptr where intrinsics.type_is_integer(T) {
  1063. if ptr^ == 0 {
  1064. return nil
  1065. }
  1066. when intrinsics.type_is_unsigned(T) {
  1067. return rawptr(uintptr(ptr) + uintptr(ptr^))
  1068. } else {
  1069. return rawptr(uintptr(ptr) + uintptr(i64(ptr^)))
  1070. }
  1071. }
  1072. ptr_any := any{data, base_integer_id}
  1073. ptr: rawptr
  1074. switch i in &ptr_any {
  1075. case u8: ptr = _handle(&i)
  1076. case u16: ptr = _handle(&i)
  1077. case u32: ptr = _handle(&i)
  1078. case u64: ptr = _handle(&i)
  1079. case i8: ptr = _handle(&i)
  1080. case i16: ptr = _handle(&i)
  1081. case i32: ptr = _handle(&i)
  1082. case i64: ptr = _handle(&i)
  1083. case u16le: ptr = _handle(&i)
  1084. case u32le: ptr = _handle(&i)
  1085. case u64le: ptr = _handle(&i)
  1086. case i16le: ptr = _handle(&i)
  1087. case i32le: ptr = _handle(&i)
  1088. case i64le: ptr = _handle(&i)
  1089. case u16be: ptr = _handle(&i)
  1090. case u32be: ptr = _handle(&i)
  1091. case u64be: ptr = _handle(&i)
  1092. case i16be: ptr = _handle(&i)
  1093. case i32be: ptr = _handle(&i)
  1094. case i64be: ptr = _handle(&i)
  1095. }
  1096. return ptr
  1097. }
  1098. as_pointer :: proc(a: any) -> (value: rawptr, valid: bool) {
  1099. if a == nil { return }
  1100. a := a
  1101. ti := runtime.type_info_core(type_info_of(a.id))
  1102. a.id = ti.id
  1103. #partial switch info in ti.variant {
  1104. case Type_Info_Pointer:
  1105. valid = true
  1106. value = a.data
  1107. case Type_Info_String:
  1108. valid = true
  1109. switch v in a {
  1110. case cstring: value = rawptr(v)
  1111. case: valid = false
  1112. }
  1113. case Type_Info_Relative_Pointer:
  1114. valid = true
  1115. value = relative_pointer_to_absolute_raw(a.data, info.base_integer.id)
  1116. }
  1117. return
  1118. }
  1119. as_raw_data :: proc(a: any) -> (value: rawptr, valid: bool) {
  1120. if a == nil { return }
  1121. a := a
  1122. ti := runtime.type_info_core(type_info_of(a.id))
  1123. a.id = ti.id
  1124. #partial switch info in ti.variant {
  1125. case Type_Info_String:
  1126. valid = true
  1127. switch v in a {
  1128. case string: value = raw_data(v)
  1129. case cstring: value = rawptr(v) // just in case
  1130. case: valid = false
  1131. }
  1132. case Type_Info_Array:
  1133. valid = true
  1134. value = a.data
  1135. case Type_Info_Slice:
  1136. valid = true
  1137. value = (^runtime.Raw_Slice)(a.data).data
  1138. case Type_Info_Dynamic_Array:
  1139. valid = true
  1140. value = (^runtime.Raw_Dynamic_Array)(a.data).data
  1141. }
  1142. return
  1143. }
  1144. eq :: equal
  1145. ne :: not_equal
  1146. DEFAULT_EQUAL_MAX_RECURSION_LEVEL :: 32
  1147. not_equal :: proc(a, b: any, including_indirect_array_recursion := false, recursion_level := 0) -> bool {
  1148. return !equal(a, b, including_indirect_array_recursion, recursion_level)
  1149. }
  1150. equal :: proc(a, b: any, including_indirect_array_recursion := false, recursion_level := 0) -> bool {
  1151. if a == nil && b == nil {
  1152. return true
  1153. }
  1154. if a.id != b.id {
  1155. return false
  1156. }
  1157. if a.data == b.data {
  1158. return true
  1159. }
  1160. including_indirect_array_recursion := including_indirect_array_recursion
  1161. if recursion_level >= DEFAULT_EQUAL_MAX_RECURSION_LEVEL {
  1162. including_indirect_array_recursion = false
  1163. }
  1164. t := type_info_of(a.id)
  1165. if .Comparable not_in t.flags && !including_indirect_array_recursion {
  1166. return false
  1167. }
  1168. if t.size == 0 {
  1169. return true
  1170. }
  1171. if .Simple_Compare in t.flags {
  1172. return runtime.memory_compare(a.data, b.data, t.size) == 0
  1173. }
  1174. t = runtime.type_info_core(t)
  1175. switch v in t.variant {
  1176. case Type_Info_Named:
  1177. unreachable()
  1178. case Type_Info_Tuple:
  1179. unreachable()
  1180. case Type_Info_Any:
  1181. if !including_indirect_array_recursion {
  1182. return false
  1183. }
  1184. va := (^any)(a.data)
  1185. vb := (^any)(b.data)
  1186. return equal(va, vb, including_indirect_array_recursion, recursion_level+1)
  1187. case Type_Info_Map:
  1188. return false
  1189. case Type_Info_Relative_Slice:
  1190. return false
  1191. case
  1192. Type_Info_Boolean,
  1193. Type_Info_Integer,
  1194. Type_Info_Rune,
  1195. Type_Info_Float,
  1196. Type_Info_Complex,
  1197. Type_Info_Quaternion,
  1198. Type_Info_Type_Id,
  1199. Type_Info_Pointer,
  1200. Type_Info_Multi_Pointer,
  1201. Type_Info_Procedure,
  1202. Type_Info_Bit_Set,
  1203. Type_Info_Enum,
  1204. Type_Info_Simd_Vector,
  1205. Type_Info_Relative_Pointer,
  1206. Type_Info_Soa_Pointer,
  1207. Type_Info_Matrix:
  1208. return runtime.memory_compare(a.data, b.data, t.size) == 0
  1209. case Type_Info_String:
  1210. if v.is_cstring {
  1211. x := string((^cstring)(a.data)^)
  1212. y := string((^cstring)(b.data)^)
  1213. return x == y
  1214. } else {
  1215. x := (^string)(a.data)^
  1216. y := (^string)(b.data)^
  1217. return x == y
  1218. }
  1219. return true
  1220. case Type_Info_Array:
  1221. for i in 0..<v.count {
  1222. x := rawptr(uintptr(a.data) + uintptr(v.elem_size*i))
  1223. y := rawptr(uintptr(b.data) + uintptr(v.elem_size*i))
  1224. if !equal(any{x, v.elem.id}, any{y, v.elem.id}, including_indirect_array_recursion, recursion_level) {
  1225. return false
  1226. }
  1227. }
  1228. return true
  1229. case Type_Info_Enumerated_Array:
  1230. for i in 0..<v.count {
  1231. x := rawptr(uintptr(a.data) + uintptr(v.elem_size*i))
  1232. y := rawptr(uintptr(b.data) + uintptr(v.elem_size*i))
  1233. if !equal(any{x, v.elem.id}, any{y, v.elem.id}, including_indirect_array_recursion, recursion_level) {
  1234. return false
  1235. }
  1236. }
  1237. return true
  1238. case Type_Info_Struct:
  1239. if v.equal != nil {
  1240. return v.equal(a.data, b.data)
  1241. } else {
  1242. for offset, i in v.offsets {
  1243. x := rawptr(uintptr(a.data) + offset)
  1244. y := rawptr(uintptr(b.data) + offset)
  1245. id := v.types[i].id
  1246. if !equal(any{x, id}, any{y, id}, including_indirect_array_recursion, recursion_level) {
  1247. return false
  1248. }
  1249. }
  1250. return true
  1251. }
  1252. case Type_Info_Union:
  1253. if v.equal != nil {
  1254. return v.equal(a.data, b.data)
  1255. }
  1256. return false
  1257. case Type_Info_Slice:
  1258. if !including_indirect_array_recursion {
  1259. return false
  1260. }
  1261. array_a := (^runtime.Raw_Slice)(a.data)
  1262. array_b := (^runtime.Raw_Slice)(b.data)
  1263. if array_a.len != array_b.len {
  1264. return false
  1265. }
  1266. if array_a.data == array_b.data {
  1267. return true
  1268. }
  1269. for i in 0..<array_a.len {
  1270. x := rawptr(uintptr(array_a.data) + uintptr(v.elem_size*i))
  1271. y := rawptr(uintptr(array_b.data) + uintptr(v.elem_size*i))
  1272. if !equal(any{x, v.elem.id}, any{y, v.elem.id}, including_indirect_array_recursion, recursion_level+1) {
  1273. return false
  1274. }
  1275. }
  1276. return true
  1277. case Type_Info_Dynamic_Array:
  1278. if !including_indirect_array_recursion {
  1279. return false
  1280. }
  1281. array_a := (^runtime.Raw_Dynamic_Array)(a.data)
  1282. array_b := (^runtime.Raw_Dynamic_Array)(b.data)
  1283. if array_a.len != array_b.len {
  1284. return false
  1285. }
  1286. if array_a.data == array_b.data {
  1287. return true
  1288. }
  1289. if .Simple_Compare in v.elem.flags {
  1290. return runtime.memory_compare((^byte)(array_a.data), (^byte)(array_b.data), array_a.len * v.elem.size) == 0
  1291. }
  1292. for i in 0..<array_a.len {
  1293. x := rawptr(uintptr(array_a.data) + uintptr(v.elem_size*i))
  1294. y := rawptr(uintptr(array_b.data) + uintptr(v.elem_size*i))
  1295. if !equal(any{x, v.elem.id}, any{y, v.elem.id}, including_indirect_array_recursion, recursion_level+1) {
  1296. return false
  1297. }
  1298. }
  1299. return true
  1300. }
  1301. runtime.print_typeid(a.id)
  1302. runtime.print_string("\n")
  1303. return true
  1304. }